EP0471340B1 - Palier linéaire - Google Patents

Palier linéaire Download PDF

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Publication number
EP0471340B1
EP0471340B1 EP91113577A EP91113577A EP0471340B1 EP 0471340 B1 EP0471340 B1 EP 0471340B1 EP 91113577 A EP91113577 A EP 91113577A EP 91113577 A EP91113577 A EP 91113577A EP 0471340 B1 EP0471340 B1 EP 0471340B1
Authority
EP
European Patent Office
Prior art keywords
ball
line
movable body
guide
curvature
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
EP91113577A
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German (de)
English (en)
Other versions
EP0471340A2 (fr
EP0471340A3 (en
Inventor
Hisayoshi Narumiya
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Koyo Seiko Co Ltd
Original Assignee
Koyo Seiko Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from JP21526690A external-priority patent/JP2717324B2/ja
Application filed by Koyo Seiko Co Ltd filed Critical Koyo Seiko Co Ltd
Publication of EP0471340A2 publication Critical patent/EP0471340A2/fr
Publication of EP0471340A3 publication Critical patent/EP0471340A3/en
Application granted granted Critical
Publication of EP0471340B1 publication Critical patent/EP0471340B1/fr
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C29/00Bearings for parts moving only linearly
    • F16C29/04Ball or roller bearings
    • F16C29/06Ball or roller bearings in which the rolling bodies circulate partly without carrying load
    • F16C29/0633Ball or roller bearings in which the rolling bodies circulate partly without carrying load with a bearing body defining a U-shaped carriage, i.e. surrounding a guide rail or track on three sides
    • F16C29/0652Ball or roller bearings in which the rolling bodies circulate partly without carrying load with a bearing body defining a U-shaped carriage, i.e. surrounding a guide rail or track on three sides whereby the return paths are at least partly defined by separate parts, e.g. covers attached to the legs of the main body of the U-shaped carriage
    • F16C29/0654Ball or roller bearings in which the rolling bodies circulate partly without carrying load with a bearing body defining a U-shaped carriage, i.e. surrounding a guide rail or track on three sides whereby the return paths are at least partly defined by separate parts, e.g. covers attached to the legs of the main body of the U-shaped carriage with balls
    • F16C29/0659Ball or roller bearings in which the rolling bodies circulate partly without carrying load with a bearing body defining a U-shaped carriage, i.e. surrounding a guide rail or track on three sides whereby the return paths are at least partly defined by separate parts, e.g. covers attached to the legs of the main body of the U-shaped carriage with balls with four rows of balls
    • F16C29/0661Ball or roller bearings in which the rolling bodies circulate partly without carrying load with a bearing body defining a U-shaped carriage, i.e. surrounding a guide rail or track on three sides whereby the return paths are at least partly defined by separate parts, e.g. covers attached to the legs of the main body of the U-shaped carriage with balls with four rows of balls with load directions in O-arrangement
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C29/00Bearings for parts moving only linearly
    • F16C29/04Ball or roller bearings
    • F16C29/06Ball or roller bearings in which the rolling bodies circulate partly without carrying load

Definitions

  • the present invention relates to linear guide devices according to the preamble of claim 1.
  • Linear guide devices of this kind are for example used for linearly moving the table of a machining tool.
  • Linear guide devices of the above-mentioned type heretofore known include one which comprises a straight guide rail, and a movable body having an approximately inverted U-shaped cross section and movable as fitted over the guide rail.
  • Each of opposite side surfaces of the guide rail and the surface of each of opposite legs of the movable body which surface is opposed to the rail side surface are each formed with a ball guide groove having a circular-arc portion.
  • the ball guide grooves are equal in the curvature of the circular-arc portion over the entire length thereof and provide a forward ball passage.
  • Each of opposite legs of the movable body is formed with a return ball passage.
  • Each end of the forward ball passage is in communication with the corresponding end of the return ball passage through a reverse passage formed in each end of the movable body to form a circular ball channel.
  • a plurality of balls are enclosed in the circulation ball channel, rollable between the movable body and the guide rail, and in point contact with the circular-arc portions of the ball guide grooves when in the forward ball passage of the circulation channel.
  • a line through the center of curvature of the movable body ball guide groove is in parallel to a line through the center of curvature of the guide rail ball guide groove.
  • the balls are rollable in point contact with the circular-arc portions of the two grooves, so that the line through the center of curvature of the movable body guide groove is naturally positioned closer to the guide rail than the line through the center of curvature of the guide rail guide groove. Further when in the forward ball passage, the ball is preloaded in a direction through the points of contact of the ball with the ball guide faces.
  • the forward ball passage is a loading zone
  • the return ball passage and the reverse ball passage are nonloading zones.
  • the hall is elastically brought close to the circular-arc portions of the grooves and elastically deformed by contact with these portions.
  • the nonloading zone there is a clearance inside the groove circular-arc portions around the ball for the ball to freely roll along, and the ball is free of deformation. Accordingly, the ball is abruptly relieved of the load acting thereon when entering the nonloading zone from the loading zone, whereas the ball is abruptly loaded heavily when entering the loading zone from the nonloading zone. In either case, the ball deforms suddenly. Consequently, when the balls travel between the loading zone and the non-loading zone even under a constant load, the movable body will not advance straight properly because the number of loaded balls changes abruptly, entailing the problem of causing vibration to the movable body.
  • a load reducing region is conventionally formed at each of longitudinally opposite ends of the ball guide groove of the movable body, for example, by grinding the end portion of the guide groove after the groove has been formed by grinding the movable body.
  • the line through the center of curvature of the movable body ball guide groove is deviated, when seen in cross section, on a straight line extending from the above line through the points of contact of the ball with the circular-arc portions of the ball guide grooves in a maximum loading region, and is thereby gradually brought closer to the line through the center of curvature of the guide rail ball guide groove toward the reverse passage.
  • the balls When in the forward passage, the balls are then all preloaded only in the direction through the points of contact of the ball with the two ball guide grooves, i.e., in the same direction. This gives rise to problems. If the balls are loaded in a direction other than the preloading direction, especially in a direction orthogonal to the line through the points of contact, a reduced loading capacity or rigidity will result, and the movable body undergoes greater vibration.
  • the main object of the present invention is to provide a linear guide device free of the foregoing problems.
  • the line through the center of the movable body guide groove in the load reducing region is displaced, when seen in cross section, on the line extending from this line through a point away from the straight line through the contact points in the maximum loading region and is thereby made to gradually approach the line through the center of guide rail guide groove toward the reverse passage.
  • the distance between the points of contact of the ball with the guide groove portions gradually increases toward the reverse passage, consequently reducing the load on the ball gradually, whereby the movable body is prevented from displacement when the balls travel between the loading zone and the nonloading zone.
  • the points of contact of the ball with the groove circular-arc portions of the guide rail and the movable body gradually shift when seen in cross section, and the direction through the points of contact gradually alters, so that the ball is preloaded in varying directions. This inhibits the vibration that would occur when the balls are loaded in a direction other than the direction of the straight line in the maximum loading region through the points of contact of the ball with the two guide groove circular-arc portions.
  • the circulation ball channel is provided at each of upper and lower two levels on each of the right and left sides of the guide rail.
  • the line through the points of contact of the ball with the guide groove circular-arc portions forming the forward ball passage of one of the circulation channels intersects the corresponding line of the other circulation channel laterally outwardly of the forward passages of the channels.
  • the lines through the centers of curvature of the two movable body ball guide grooves in the load reducing regions shift in directions toward each other. This structure prevents the ball from causing damage to a thin wall part of a ball scooping portion forming the reverse passage of the movable body and formed in the vicinity of the junction of the reverse passage and the forward passage.
  • the distance between the points of contact of the ball with the two guide groove circular-arc portions is smallest at the middle portion and gradually increases toward the lengthwise opposite ends of the movable body. Accordingly the clearance around the ball is smallest in the lengthwise middle portion of the forward passage and gradually increases toward the lengthwise opposite ends of the forward passage.
  • the movable body When the movable body is installed, for example, on the table of machining tool, it is likely that the installation involves errors, such that the movable body is installed as rotated about a vertical axis or a lateral horizontal axis, or the surface to which the body is installed will involve minute geometrical errors.
  • the movable body will then be subjected to a moment (so-called yawing moment) about the vertical axis, i.e., an axis orthogonal to the direction of advance of the movable body, or to a moment (so-called pitching moment) about the lateral horizontal axis.
  • the above feature prevents the balls from being excessively loaded at the ends of the ball guide grooves of the movable body, assuring the balls of smooth movement. As a result, the movable body is smoothly movable with greater ease and is given a prolonged life.
  • FIGS. 1 to 10 show a first embodiment of linear guide device of the present invention.
  • the device comprises a straight guide rail 1, and a movable body 2 approximately inverted U-shaped in cross section and movable as fitted over the guide rail 1.
  • the guide rail 1 is formed in each of its right and left side surfaces with a shallow groove 3 extending in the front-to-rear direction, i.e., longitudinally of the rail 1, and with circular-arc ball guide grooves 4, 5 positioned respectively above and below the groove 3 and having equal curvatures over the entire length thereof.
  • a line A through the center of curvature of each guide groove 4 (5) in the guide rail 1 extends straight longitudinally of the rail 1 (see FIG. 5).
  • the movable body 2 has right and left opposed legs 2a.
  • the surface of each leg 2a opposed to the side surface of the guide rail 1 is formed with upper and lower two circular-arc ball guide grooves 6, 7 opposed to the guide grooves 4, 5, respectively, and having equal curvatures over the entire length thereof.
  • the guide groove 4 (5) of the guide rail 1 and the guide groove 6 (7) of the movable body 2 form a forward ball passage 8 (9).
  • Each leg 2a of the movable body 2 is formed with upper and lower two borelike return ball passages 10, 11.
  • Each end of the forward ball passage 8 (9) communicates with the corresponding end of the return ball passage 10 (11) through a reverse passage 12 (13) formed in each of the front and rear ends of the movable body 2 to provide an endless circulation ball channel 14 (15).
  • the upper reverse passage 12 is inclined downward laterally outward.
  • the lower reverse passage 13 is inclined upward laterally outward.
  • a plurality of balls 16 are enclosed in each of the circulation ball channels 14, 15.
  • the balls 16 are greater in curvature than the ball guide grooves 4, 5, 6, 7 of the guide rail 1 and the movable body 2.
  • the balls 16 in the forward passage 8 (9) of each circulation channel 14 (15) are in contact with each of the faces defining the grooves 4 and 6 (5 and 7) at one point P or Q (see FIG. 3).
  • the ball guide groove 6 (7) of the movable body 2 has at each of its front and rear end portions a load reducing region 6a (7a) for gradually decreasing the load on the ball 16 toward the reverse passage 12 (13).
  • a line B through the center of curvature of the guide groove 6 (7) extends straight in parallel to a line A through the center of curvature of the guide groove 4 (5) of the guide rail 1 and is positioned closer to the guide rail 1 than the line A.
  • the line B of the upper guide groove 6 and the line B of the lower guide groove 7 gradually approach the respective lines A through the centers of curvature of the guide grooves 4, 5 of the guide rail 1 so as to approach each other toward the respective reverse passages 12, 13. More specifically, the line B through the center or curvature of the load reducing region 7a of the movable body lower guide groove 7 shifts upward, when seen in cross section and as indicated by an arrow X in FIG.
  • each line B is positioned on a line T extending through the line A of the guide rail groove and in parallel to the reverse passage 12 or 13.
  • the shifting direction mentioned above is not limitative; the line B approaches the line A when shifting in any direction insofar as the shift is within a circle centered about the line A and having a radius equal to the distance between the lines A and B in the intermediate portion 6b or 7b.
  • some portions of the upper circulation channel 14 are each indicated by a reference numeral following the reference numeral of the corresponding portion of the lower circulation channel 15 shown.
  • the movable body 2 as assembled comprises front and rear end caps 17 and an intermediate member 18.
  • Each of the end caps 17 comprises right and left opposed legs 19, and a connecting portion 21 interconnecting the upper ends of the legs 19.
  • the intermediate member 18 comprises opposed legs 20 and a connecting portion 22.
  • the ball guide grooves 6, 7 are formed in the laterally inner side, opposed to the guide rail 1, of each leg 20 of the intermediate member 18 of the movable body 2.
  • a retainer 23 is provided between the upper and lower grooves 6, 7.
  • the borelike return passages 10, 11 are formed in the leg 20 outwardly of the grooves 6, 7.
  • the reverse passage 12 (13) is formed for interconnecting the ends of the forward passage 8 (9) and the return passage 10 (11).
  • the movable body 2 comprises the two end caps 17, a central main portion 24 and two cages 25 in combination.
  • each leg 19 of the end cap 17 is formed on the laterally inner surface thereof with a ridge 26 opposed to the groove 3 in the rail 1 and with circular-arc portions 27 positioned above and below the ridge 26 and corresponding to the respective guide grooves 4, 5.
  • the inner surface, opposed to the main portion 24, of the end cap leg 19 has a groove 28 formed over the entire lateral width thereof including the ridge 26 and the circular-arc portions 27, and a projection 29 formed under the groove 28 and projecting inward.
  • the upper and lower side walls defining the groove 28 are inclined to extend slightly away from each other laterally inward, partly forming the reverse passages 12, 13.
  • the inner surface of the leg defining the bottom of the groove 28 is formed with upper and lower shallow recesses 30 in an elongated circular form.
  • each recess 30 extends to the circular-arc portion 27 corresponding to the ball guide groove 6 or 7.
  • the periphery of the circular-arc portion 27 defines this end of the recess 30 and serves as a scooping portion 31 for scooping the ball entering the reverse passage 12 or 13.
  • the curvature of the outer periphery of the scooping portion 31 corresponds to the curvature of the guide groove 6 or 7, and the inner periphery thereof defining the recess end corresponds to the ball 16 in curvature.
  • the upper recess 30 inclines downward laterally outward, while the lower recess 30 inclindes upward laterally outward, so that the thickness of the scooping poriton 31 is greatest where it is adjacent to the ridge 26 and gradually decreases as it extends away therefrom.
  • a cutout 32 in the form of a semicircular groove is formed in the inner face of the projection 29 at a laterally intermediate portion thereof.
  • a cavity 33 in the form of a semi-circular groove is formed in the inner surface of the end cap leg 19 above the groove 28 and has a lower end opposed to the groove 28.
  • Each cage 25 is an integral piece comprising a horizontal plate 20a forming the lower portion of the leg 20 of the intermediate member 18 of the movable body 2, a vertical plate 20b forming the portion of the leg 20 outward from the lower return passage 11, the retainer 23 and guide members 34 positioned at the respective ends of the cage and each in the form of a post of semicircular cross section.
  • the vertical plate 20b extends upward from the laterally outer edge of the horizontal plate 20a.
  • Posts 20c are formed integrally with the front and rear ends of the vertical plate 20b.
  • the retainer 23 is in the form of a vertical plate and has its front and rear ends integrally joined to the respective posts 20c by connecting portions 35.
  • the retainer 23 is positioned above the laterally inner edge of horizontal plate 20a.
  • the guide members 34 are integral with the respective front and rear ends of the horizontal plate 20a, extend upward and have lower portions projecting outward from the respective front and rear ends of the plate 20a. With respect to the lengthwise direction of the cage 25, the outer side of each guide member 34 has a cylindrical face 34a, and the inner side thereof has a flat face 34b.
  • the guide member 34 is integral at a vertically intermediate portion thereof with the connecting portion 35.
  • the flat face 34b of the guide member 34 is flush with the inner faces of the post 20c and the connecting portion 35.
  • the connecting portion 35 has a flat outer face which is positioned outward from the cylindrical face 34a of the guide member 34 and is flush with the outer face of the post 20c.
  • the lower edge of the retainer 23 is spaced by a predetermined distance from the laterally inner edge of the horizontal plate 20a.
  • the inner edge of the horizontal plate 20a has a ball guide face 36.
  • the upper and lower edges of the retainer 23 also have ball guide faces 37, 38, respectively.
  • the junction of the horizontal plate 20a and the vertical plate 20b also has a ball guide face 39.
  • the upper and lower surfaces of the connecting portion 35 further provide ball guide faces 40.
  • ball guide portions 41 partly providing the reverse passages 12, 13 are formed by the clindrical face 34a of the guide member 34, ball guide faces of the connecting portion 35, laterally inner face of the post 20c and laterally outer face of the retainer 23.
  • the central main portion 24 comprises the opposed legs 20 of the intermediate member 18 other than the cages 25, i.e., cores 20d, and the connecting portion 22 integral with the cores 20d.
  • the length of the main portion 24 is slightly smaller than the distance between the flat faces 34b of the front and rear guide members 34 of the cage 25.
  • the ball guide grooves 6, 7 are formed in the laterally inner surface of each core 20d.
  • a bore 42 providing the upper return passage 10 extends through the core 20d and is positioned laterally outwardly of the upper groove 6 slightly therebelow.
  • a groove 43 opened laterally and downwardly and providing the lower return passage 11 is formed in the core 20d and positioned laterally outwardly of and slightly above the lower groove 7.
  • the main portion 24 and the cages 25 are assembled with each core 20d of the main portion 24 fitted in a space defined by the vertical plate 20b, retainer 23, front and rear guide members 34 and connecting portion 35 of each cage 25. Consequently, the lower surface of the core 20d is in contact with the upper surface of the horizontal plate 20a between the guide members 34, and the front and rear ends are in contact with the flat faces 34b of the front and rear guide members 34 and the lengthwise inner flat faces of the connecting portions 35. Further the laterally outer portion of the core 20d fits in between the front and rear posts 20c, and the lower surface of the core portion extending laterally outward above the groove 43 is in intimate contact with the upper surface of the vertical plate 20b.
  • the lower groove 43 of each core 20d and the guide face 39 at the junction of the horizontal plate 20a and the vertical plate 20b form the lower return passage 11. The laterally inner surface of the core 20d is in contact with the retainer 23.
  • each guide member 34 of the cage 25 fits in the cutout 32 in the projection 29 of the end cap 17, with the upper portion thereof fitting in the cavity 33 of the end cap 17.
  • Each upper reverse passage 12 is formed by the upper ball guide portion 41 and the upper recess 30 of the end cap 17.
  • each lower reverse passage 13 is formed by the lower ball guide portion 41 and the lower recess 30 of the end cap 17.
  • the balls 16 in the forward passage 8 (9) of each circulation channel 14 roll along the guide grooves 4 and 6 (5 and 7) of the rail 1 and the movable body 2 rearwardly of the forward passage 8 (9) with respect to the direction of movement. Accordingly, the balls 16 in the forward passage 8 (9) successively enter the reverse passage 12 (13) positioned rearward with respect to the direction of movement, the balls 16 in the reverse passage 12 (13) successivley enter the return passage 10 (11), and the balls 16 in the return passage 10 (11) successively enter the forward passage 8 (9) through the reverse passage 12 (13) positioned forward with respect to the direction of movement. In this way, the balls 16 circulate through the circulation channel 14 (15).
  • the line B of the movable body 2 When the ball 16 reaches the end of the load reducing region 7a adjacent to the reverse passage 13, the line B of the movable body 2 further approaches the line A of the guide rail 1 on the curve S as shown in FIG. 10, and the distance between the lines A and B becomes smaller than in FIG. 9.
  • the points of contact of the ball 16 with the grooved faces 5, 7 shift to P2, Q2.
  • the line L through the contact points P2, Q2 extends through the line A and is in alignment with a line T parallel to the reverse passage 13. Consequently, the distance between the contact points P2, Q2 becomes greater than the distance between the contact points P1, Q1, and the ball 16 is subjected to a further smaller load and elastically brought still less close to the grooved faces 5, 7.
  • the direction of the load acting on the ball 16 is initially so inclined in the intermediate portion 7b that the right side is above a horizontal line, whereas the direction gradually rotates rightward toward the reverse passage 13 when seen in cross section and eventually becomes parallel to the reverse passage.
  • the ball 16 enters the reverse passage 13 which is a nonloading zone. While the ball 16 thus travels from the intermediate portion 7b through the load reducing region 7a into the reverse passage 13, the load on the ball 16 gradually decreases. This prevents the displacement of the movable body 2 when the balls 2 move from the loading zone into the nonloading zone, permitting the movable body to advance straight properly.
  • the points of contact of the ball with the grooved faces 5, 7 of the guide rail 1 and the movable body 2 gradually shift from P,Q to P1, Q1 and then to P2, Q2, with the direction through the contact points P, Q also altering gradually, with the result that the balls 16 are preloaded in varying directions. Accordingly, when the ball 16 is loaded in the maximum loading region in a direction other than the direction of the straight line through the contact points P, Q, vibration can be inhibited.
  • the ball 16 in the forward passage is preloaded in a direction toward the reverse passage 12 or 13 immediately before entering the reverse passage 12 or 13. This permits the ball to enter the reverse passage smoothly.
  • FIG. 11 shows a second embodiment of linear guide device of the invention.
  • a line L1 through the points P, Q of contact of the ball 16 with the guide grooved faces 4, 6 forming the forward ball passage 8 of the circulation ball channel 14 intersects a line L1 through the points P, Q of contact of the ball 16 with the guide grooved faces 5, 7 forming the forward ball passage 9 of the circulation channel 15 laterally inwardly of the forward passages 8, 9.
  • the second embodiment operates in the same manner as the first with the same advantages.
  • FIG. 12 shows a third embodiment of linear guide device of the present invention.
  • the line B through the center of curvature of the circular-arc ball guide groove 6 (7) of the movable body 2 is remotest from the line A through the center of curvature of the ball guide groove 4 (5) of the guide rail 1 in the lengthwise midportion of the movable body 2, and gradually approaches the line A toward the lengthwise opposite ends of the body 2.
  • the line B is in the form of a circular arc of small curvature.
  • the distance between the points P, Q of contact of the ball 16 with the guide grooved faces 4, 6 (5, 7) is smallest at the midportion and gradually increases toward the opposite ends, so that the preload on the balls 16 in the forward passage 8 (9) is greatest at the midportion and gradually decreases toward the ends.
  • the line B approaches the line A in the same manner as in the first embodiment. In an intermediate portion of the movable body 2 other than the front and rear end portions thereof having a predetermined length, the line B may gradually approach the line A through the center of curvature of the guide rail guide groove 4 (5) on the straight line L through the points P, Q of contact of the ball 16 with the guide grooved faces 4, 6 (5, 7).
  • the ball 16 at the lengthwise midportion of the ball foward passage 8 (9) is given a usual preload. If a moment about a vertical axis or about a lateral axis then acts on the movable body 2, the load on the other balls 16 increases but will not be greater than the preload applied to the ball 16 at the midportion.
  • the third embodiment operates in the same manner as the first with the exception of the above feature.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Bearings For Parts Moving Linearly (AREA)

Claims (6)

  1. Dispositif de guidage linéaire comprenant un rail de guidage rectiligne (1) et un corps mobile (2) qui présente une section transversale approximativement en forme de U renversé et qui est déplaçable une fois ajusté sur le rail de guidage, chacune des surfaces latérales en vis-à-vis du rail de guidage et une surface de chacune des branches opposées (2a) du corps mobile, surface qui est en vis-à-vis de la surface latérale du rail, étant respectivement pourvues d'une rainure de guidage de billes (4, 5, 6, 7) présentant une partie en arc de cercle, les rainures de guidage de billes ayant la même courbure de la partie en arc de cercle sur leur longueur entière, les rainures de guidage de billes définissant un passage aller (8, 9) pour les billes, chacune des branches opposées du corps mobile étant pourvue d'un passage de retour (10, 11) pour les billes, chaque extrémité du passage aller pour les billes étant en communication avec l'extrémité correspondante du passage de retour (10, 11) pour les billes par l'intermédiaire d'un passage d'inversion (12, 13) ménagé dans chacune des extrémités du corps mobile pour définir un canal (14, 15) de circulation des billes, plusieurs billes (16) étant enfermées dans le canal de circulation des billes et pouvant rouler entre le corps mobile et le rail de guidage, les billes étant en contact ponctuel avec les parties en arc de cercle des rainures de guidage de billes quand elles se trouvent dans le passage aller (8, 9) pour les billes du canal (14, 15) de circulation des billes, caractérisé en ce que la rainure de guidage de billes (6, 7) du corps mobile (2) présente, à chacune de ses extrémités, une région de réduction de charge (6a, 7a) abaissant progressivement la charge sur la bille en direction du passage d'inversion (12, 13), une ligne (B) passant par le centre de courbure de la partie en arc de cercle de la rainure de guidage (6, 7) du corps mobile (2), appelée à être en contact ponctuel avec la bille (16) dans la région de réduction de charge, est déplacée, vue en coupe transversale, sur une ligne (S) qui s'étend à partir de ladite ligne (B) passant par le centre de courbure de la rainure de guidage (6, 7) du corps mobile (2), et qui passe par un point (R) en s'éloignant d'une ligne droite (L) passant par les points (P, Q) de contact de la bille avec les parties en arc de cercle des rainures de guidage de billes (4, 5, 6, 7), dans une région de chargement maximum, dans les limites d'un intervalle plus proche du rail de guidage (1) qu'une ligne (A) passant par le centre de courbure de la rainure de guidage (4, 5) du rail de guidage (1), appelée à être en contact ponctuel avec la bille, et est ainsi amenée à s'approcher progressivement de la ligne (A) du centre de courbure de la rainure de guidage (4, 5) du rail de guidage (1) en direction du passage d'inversion.
  2. Dispositif de guidage linéaire tel que défini dans la revendication 1, caractérisé en ce que la ligne (S), qui s'étend à partir de ladite ligne (B) du centre de courbure de la rainure de guidage (6, 7) du corps mobile (2) et qui passe par le point (R) en s'éloignant de la ligne droite (L) passant par les points (P, Q) de contact dans la région de chargement maximum, est une courbe continue.
  3. Dispositif de guidage linéaire tel que défini dans la revendication 1, caractérisé en ce que, vue en coupe transversale, ladite ligne (B) passant par le centre de courbure de la rainure de guidage (6, 7) du corps mobile (2) dans la région de réduction de charge, se déplace vers une ligne (T) s'étendant à travers la ligne (A) qui passe par le centre de courbure de la rainure de guidage (4, 5) du rail de guidage (1) et parallèlement au passage d'inversion.
  4. Dispositif de guidage linéaire tel que défini dans la revendication 1, caractérisé en ce que ladite ligne (B) du centre de courbure de la rainure de guidage (6, 7) du corps mobile (2) est la plus éloignée de la ligne (A) du centre de courbure de la rainure de guidage (4, 5) du rail de guidage (1), dans la partie médiane en direction longitudinale du corps mobile (2), et se rapproche de la ligne (A) du centre de courbure de la rainure de guidage (4, 5) du rail de guidage (1) en direction des extrémités opposées, en direction longitudinale, du corps mobile.
  5. Dispositif de guidage linéaire tel que défini dans la revendication 1, caractérisé en ce que le canal (14, 15) de circulation des billes est ménagé à hauteur de chacun de deux niveaux supérieur et inférieur, sur chacun des côtés droit et gauche du rail de guidage (1), et la ligne (L) passant par les points (P, Q) de contact de la bille avec les parties en arc de cercle des rainures de guidage, qui forment le passage aller (8; 9) pour les billes de l'un des canaux de circulation (14; 15), intercepte la ligne correspondante (L) de l'autre canal de circulation (15; 14), latéralement et vers l'extérieur des passages aller des canaux, les lignes (B) passant par les centres de courbure des rainures de guidage du corps mobile dans les régions de réduction de charge se déplaçant dans des directions les rapprochant l'une de l'autre.
  6. Dispositif de guidage linéaire tel que défini dans la revendication 1, caractérisé en ce que le canal (14, 15) de circulation des billes est ménagé à hauteur de chacun de deux niveaux supérieur et inférieur, sur chacun des côtés droit et gauche du rail de guidage (1), et la ligne (L) passant par les points (P, Q) de contact de la bille (16) avec les parties en arc de cercle des rainures de guidage, qui forment le passage aller (8; 9) pour les billes de l'un des canaux de circulation (14; 15), intercepte la ligne correspondante (L) de l'autre canal de circulation (15; 14), latéralement et vers l'intérieur des passages aller des canaux, les lignes (B) passant par les centres de courbure des deux rainures de guidage de billes du corps mobile dans les régions de réduction de charge, se déplaçant dans des directions les éloignant l'une de l'autre.
EP91113577A 1990-08-14 1991-08-13 Palier linéaire Expired - Lifetime EP0471340B1 (fr)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
JP215266/90 1990-08-14
JP21526690A JP2717324B2 (ja) 1990-08-14 1990-08-14 直動形ガイド装置
JP215264/90 1990-08-14
JP21526490 1990-08-14

Publications (3)

Publication Number Publication Date
EP0471340A2 EP0471340A2 (fr) 1992-02-19
EP0471340A3 EP0471340A3 (en) 1993-01-27
EP0471340B1 true EP0471340B1 (fr) 1995-04-26

Family

ID=26520776

Family Applications (1)

Application Number Title Priority Date Filing Date
EP91113577A Expired - Lifetime EP0471340B1 (fr) 1990-08-14 1991-08-13 Palier linéaire

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US (1) US5145261A (fr)
EP (1) EP0471340B1 (fr)
KR (1) KR0182800B1 (fr)
DE (1) DE69109206T2 (fr)

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Publication number Priority date Publication date Assignee Title
JPH0560129A (ja) * 1991-08-23 1993-03-09 Nippon Thompson Co Ltd 防振性を有する直動案内摺動ユニツト
US5649770A (en) * 1996-04-04 1997-07-22 Hiwin Technologies Corp. Ball circulating structure for linear guide assembly
DE19643737A1 (de) * 1996-04-20 1998-04-30 Schaeffler Waelzlager Ohg Linearwälzlager
US6481893B1 (en) * 1998-09-11 2002-11-19 Ina Walzlager Schaeffler Ohg Linear roll bearing
JP2000120674A (ja) * 1998-10-12 2000-04-25 Nsk Ltd 直線運動案内装置
JP2001182745A (ja) * 1999-12-27 2001-07-06 Nsk Ltd 直動案内軸受
US7216559B2 (en) * 2002-03-04 2007-05-15 Hiwin Technologies Corp. Guide actuator with high radial direction load capacity
DE10248236A1 (de) * 2002-10-16 2004-04-29 Ina-Schaeffler Kg Linearführungseinheit
DE10332922A1 (de) * 2003-07-19 2005-02-03 Ina-Schaeffler Kg Führungswagen eines Linearwälzlagers
DE102004036529A1 (de) * 2004-07-28 2006-03-23 Bosch Rexroth Mechatronics Gmbh Linearvorrichtung
JP6365026B2 (ja) 2014-07-03 2018-08-01 日本精工株式会社 直動案内装置
JP5932926B2 (ja) 2014-09-19 2016-06-08 Thk株式会社 運動案内装置、アクチュエータ

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0379827A1 (fr) * 1989-01-25 1990-08-01 Marc Lecomte Guide linéaire de précision

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Publication number Priority date Publication date Assignee Title
EP0217971B1 (fr) * 1985-10-01 1988-12-28 SRO Kugellagerwerke J. Schmid-Roost AG Palier linéaire sans limitation du mouvement longitudinal
DE3542478A1 (de) * 1985-11-30 1987-06-04 Skf Linearsysteme Gmbh Linearkugellager fuer schlitten in werkzeugmaschinen oder dgl.
JPH0313618Y2 (fr) * 1986-03-13 1991-03-28
JPH0715287B2 (ja) * 1986-08-19 1995-02-22 日本トムソン株式会社 無限直線運動用ころ軸受
JPH0623769Y2 (ja) * 1989-08-29 1994-06-22 日本精工株式会社 定圧予圧直動案内軸受装置
DE3931397A1 (de) * 1989-09-20 1991-03-28 Star Gmbh Waelzlager fuer linearbewegungen stichwort: schienenfuehrung mit vorspannungseinstellung
DE3931396A1 (de) * 1989-09-20 1991-03-28 Star Gmbh Linearfuehrung stichwort: "schienenfuehrung mit aufsetzaussparungen"

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0379827A1 (fr) * 1989-01-25 1990-08-01 Marc Lecomte Guide linéaire de précision

Also Published As

Publication number Publication date
US5145261A (en) 1992-09-08
EP0471340A2 (fr) 1992-02-19
DE69109206T2 (de) 1995-09-28
DE69109206D1 (de) 1995-06-01
EP0471340A3 (en) 1993-01-27
KR0182800B1 (ko) 1999-05-15
KR920004084A (ko) 1992-03-27

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